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Momb, B. A.

Publications and source records attributed to Momb, B. A..

3 recordsLinked to original sources

Phosphate and acidosis cause fiber-type specific changes to cellular and molecular contractile mechanics at 37°C in skeletal muscle from older adults

Intracellular accumulation of hydrogen ions (H+) and inorganic phosphate (Pi) have temperature-dependent effects on single fiber contractile function between 10-30{degrees}C. In vivo, human skeletal muscle temperatures range between 35-38{degrees}C, and although contractile function is highly dependent on temperature, the effects of fatigue-inducing [H+] and [Pi] on contractile mechanics at 37{degrees}C is unknown. Using sinusoidal analysis, the independent and combined effects of these metabolites on cellular and molecular contractile function were determined at 37{degrees}C in slow-contracting myosin heavy chain (MHC) I and fast-contracting MHC IIA fibers from vastus lateralis muscle of 13 older adults (8 females), under four conditions: maximal calcium activation ("control"; 5 mM Pi, pH 7.0), high Pi (30 mM), low pH (6.2), and fatigue (30 mM Pi and pH 6.2). Specific tension (force/cross-sectional area, mN/mm2) in both fiber types was reduced only under fatigue conditions (20-26%). MHC I fibers had slower cross-bridge kinetics with fewer or less stiff strongly-bound myosin-actin cross-bridges in high Pi, low pH, and fatigue. In contrast, fatigued MHC IIA fibers had faster cross-bridge kinetics with increased myofilament and/or cross-bridge viscosity. Single fiber oscillatory work was reduced in both fiber types when Pi or pH alone was altered. However, fatigue conditions returned oscillatory work values toward control through alterations to cross-bridge kinetics in MHC I fibers and changes to work absorption and production processes in MHC IIA fibers. These findings quantify fiber-type specific mechanical and kinetic mechanisms of fatigue in human skeletal muscle at 37{degrees}C, thus advancing our understanding of metabolite-based muscle fatigue in vivo. KEY POINTS SUMMARYO_LIWorking skeletal muscle increases intracellular concentrations of hydrogen ion and inorganic phosphate, leading to fatigue, or loss of force-generating capacity C_LIO_LITemperature plays a well-established role in the muscle response to hydrogen ion and/or inorganic phosphate accumulation, but has not previously been studied at human body temperature (37{degrees}C) C_LIO_LIAt 37{degrees}C, reduced force generation only occurs when high phosphate and hydrogen ions are combined, not when changed individually C_LIO_LIIn slow-contracting fibers, fatigue slowed myosin-actin cross-bridge kinetics and reduced the number or stiffness of strongly-bound cross-bridges. In fast-contracting fibers, fatigue increased myosin-actin cross-bridge kinetics and increased myofilament viscosity. C_LIO_LIThe distinct responses by fiber type to fatigue provides new insight into its mechanisms and advances our understanding of the whole muscle and body responses to fatigue C_LI Abstract Figure O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=125 SRC="FIGDIR/small/672942v1_ufig1.gif" ALT="Figure 1"> View larger version (26K): org.highwire.dtl.DTLVardef@e4ece3org.highwire.dtl.DTLVardef@17c62eforg.highwire.dtl.DTLVardef@1434e30org.highwire.dtl.DTLVardef@1c2446c_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Slow- and fast-contracting skeletal muscle fibers have more similar cellular and molecular contractile function at 37°C than at 25°C in older adults

As human skeletal muscle cellular and molecular contractile properties are temperature-sensitive, the ability to perform experiments at body temperature ([~]37{degrees}C) may lead to a better understanding of their in vivo responses and potentially their effects upon whole-muscle and whole-body performance. We quantified molecular (myosin-actin cross-bridge mechanics and kinetics) and cellular (specific tension; force divided by cross-sectional area) function in slow-contracting myosin heavy chain (MHC) I and fast-contracting MHC IIA fibers from older adults (n=13, 8 female) at 37{degrees}C and compared these to results at 25{degrees}C. MHC I fibers were more temperature-sensitive than MHC IIA fibers, showing greater increases in cross-bridge kinetics (MHC I: 4.9-8.7x; IIA: 4x) and number or stiffness of strongly-bound cross-bridges (MHC I: 86%; IIA: 34%), leading to increased specific tension in MHC I (19%), with no change in MHC IIA fibers. The expected relationship between fiber force and size (cross-sectional area, CSA) was stronger at 37{degrees}C in both fiber types, explaining 80-82% of the variance compared to 51-52% at 25{degrees}C. Specific tension was unchanged with size at 37{degrees}C in both fiber types, showing that force increases proportionally with CSA, which may be due to the increased number or stiffness of strongly-bound cross-bridges at this temperature. At 25{degrees}C, specific tension decreased with size in agreement with previous experiments. Overall, MHC I and IIA fibers at body temperature (37{degrees}C) became more analogous, including similar specific tension and closer cross-bridge kinetics, and force production was more strongly correlated with fiber size compared to a non-physiological temperature. Abstract Figure O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=103 SRC="FIGDIR/small/670366v1_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@70fe6aorg.highwire.dtl.DTLVardef@4ef5e4org.highwire.dtl.DTLVardef@1f1551forg.highwire.dtl.DTLVardef@10ba6d1_HPS_FORMAT_FIGEXP M_FIG C_FIG KEY POINTS SUMMARYO_LIAlthough skeletal muscle function is highly sensitive to temperature, human single fiber studies have only been conducted at [≤]30{degrees}C. C_LIO_LISmall-amplitude sinusoidal perturbations were utilized to elucidate mechanisms of single fiber force production at human physiological temperature (37{degrees}C). C_LIO_LIWe found that functional differences in slow-contracting myosin heavy chain (MHC I) and fast-contracting MHC IIA fibers observed at 25{degrees}C were less apparent at 37{degrees}C, as force, crossbridge kinetics, and strongly-bound crossbridges increased more in MHC I fibers than MHC IIA fibers at 37 vs. 25{degrees}C. C_LIO_LIThese results indicate that, given the different sensitivity of each fiber type to changes in temperature, functional assessments of muscle should be conducted at 37{degrees}C to better translate to vivo conditions. C_LI

physiology↗

Fast myosin binding protein C knockout in skeletal muscle alters length-dependent activation and myofilament structure.

In striated muscle, some sarcomere proteins regulate crossbridge cycling by varying the propensity of myosin heads to interact with actin. Myosin-binding protein C (MyBP-C) is bound to the myosin thick filament and is predicted to interact and stabilize myosin heads in a docked position against the thick filament and limit crossbridge formation, the so-called OFF state. Via an unknown mechanism, MyBP-C is thought to release heads into the so-called ON state, where they are more likely to form crossbridges. To study this proposed mechanism, we used the C2-/- mouse line to knock down fast-isoform MyBP-C completely and total MyBP-C by [~]24%, and conducted mechanical functional studies in parallel with small-angle X-ray diffraction to evaluate the myofilament structure. We report that C2-/- fibers presented deficits in force production and reduced calcium sensitivity. Structurally, passive C2-/- fibers presented altered SL-independent and SL-dependent regulation of myosin head ON/OFF states, with a shift of myosin heads towards the ON state. Unexpectedly, at shorter sarcomere lengths, the thin filament was axially extended in C2-/- vs. non-transgenic controls, which we postulate is due to increased low-level crossbridge formation arising from relatively more ON myosins in the passive muscle that elongates the thin filament. The downstream effect of increasing crossbridge formation in a passive muscle on contraction performance is not known. Such widespread structural changes to sarcomere proteins provide testable mechanisms to explain the etiology of debilitating MyBP-C-associated diseases.

physiology↗